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Published on: June 30, 2022
Biochemical Insights Into the Conserved Interactions of NMD Factors From Budding Yeast to Humans
Nadia Ruiz-Gutierrez1, Marc Graille2, Hervé le Hir3
1Institut de Biologie de l'Ecole Normale Supérieure (IBENS), Ecole normale supérieure, CNRS, INSERM, PSL Research University, 46 rue d'Ulm, 75005 Paris, France; Spatial Regulation of Genomes Group, Institut Pasteur, CNRS UMR 3525, Université Paris Cité, 75015 Paris, France.
Abstract:
Nonsense-mediated mRNA decay (NMD) is one of the most extensively studied pathways of cytoplasmic mRNA degradation. It plays a critical role in diverse cellular processes by eliminating aberrant transcripts containing premature stop codons and by regulating the stability of physiological mRNAs. NMD factors were initially identified through genetic screens in S. cerevisiae (UPF1, 2, 3) and C. elegans (SMG-1, SMG5-7). Subsequent biochemical and genetic studies revealed the composition of NMD complexes and identified additional factors. A major protein hub for NMD is Upf1, an ATP-dependent RNA helicase that is part of two mutually exclusive NMD assemblies, the Upf1-Upf2-Upf3 complex and the Upf1-decapping complex, which contains the decapping enzyme and its co-factors. Here, we discuss recent findings, primarily from budding yeast, on the protein-protein interactions driving NMD complexes dynamics and their similarities to human NMD. Together, the N-terminal cysteine and histidine rich (CH) and helicase domains (HD) of Upf1 act as a hub for binding multiple partners. Upf1 is required for binding to NMD substrates and for the initiation of RNA degradation through decapping (yeast) or endonucleolytic hydrolysis (humans). We focus on the interplay between Upf2, Dcp2 and Nmd4 (yeast SMG6), which ensures the mutually exclusive formation of Upf1-bound subcomplexes modulating Upf1's affinity for RNA. Thus, the study of NMD factors interactions in different organisms sheds new light on the remarkable conservation of NMD molecular mechanisms.
Insights
Nonsense-mediated mRNA decay (NMD) eliminates faulty transcripts. This study reveals how protein interactions in yeast NMD complexes are conserved in humans, clarifying mRNA degradation mechanisms.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- Nonsense-mediated mRNA decay (NMD) is a key cytoplasmic mRNA degradation pathway.
- It eliminates aberrant transcripts with premature stop codons and regulates normal mRNA stability.
- NMD factors were identified through genetic screens in yeast and C. elegans.
Purpose of the Study:
- To discuss recent findings on protein-protein interactions driving NMD complex dynamics in budding yeast.
- To highlight similarities between yeast and human NMD mechanisms.
- To elucidate the role of Upf1 as a central hub in NMD.
Main Methods:
- Review of recent findings on NMD factor interactions.
- Comparative analysis of NMD mechanisms in yeast and humans.
- Focus on protein-protein interactions within NMD complexes.
Main Results:
- Upf1, an ATP-dependent RNA helicase, acts as a major protein hub in NMD.
- Upf1 binds to NMD substrates and initiates RNA degradation.
- Interactions between Upf2, Dcp2, and Nmd4 regulate Upf1-bound subcomplex formation and RNA binding affinity.
Conclusions:
- Protein-protein interactions are crucial for NMD complex dynamics.
- The molecular mechanisms of NMD are highly conserved across different organisms.
- Understanding these interactions provides insight into mRNA quality control.
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